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Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates

In the present study, Mg (1.98 and 2.5) vol % TiO(2) nanocomposites are primarily synthesized utilizing solid-phase blend-press-sinter powder metallurgy (PM) technique and liquid-phase disintegrated melt deposition technique (DMD) followed by hot extrusion. Microstructural characterization of the sy...

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Autores principales: Meenashisundaram, Ganesh Kumar, Nai, Mui Hoon, Gupta, Manoj
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5304626/
https://www.ncbi.nlm.nih.gov/pubmed/28347063
http://dx.doi.org/10.3390/nano5031256
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author Meenashisundaram, Ganesh Kumar
Nai, Mui Hoon
Gupta, Manoj
author_facet Meenashisundaram, Ganesh Kumar
Nai, Mui Hoon
Gupta, Manoj
author_sort Meenashisundaram, Ganesh Kumar
collection PubMed
description In the present study, Mg (1.98 and 2.5) vol % TiO(2) nanocomposites are primarily synthesized utilizing solid-phase blend-press-sinter powder metallurgy (PM) technique and liquid-phase disintegrated melt deposition technique (DMD) followed by hot extrusion. Microstructural characterization of the synthesized Mg-TiO(2) nanocomposites indicated significant grain refinement with DMD synthesized Mg nanocomposites exhibiting as high as ~47% for 2.5 vol % TiO(2) NPs addition. X-ray diffraction studies indicated that texture randomization of pure Mg depends not only on the critical amount of TiO(2) NPs added to the Mg matrix but also on the adopted synthesis methodology. Irrespective of the processing technique, theoretically predicted tensile yield strength of Mg-TiO(2) nanocomposites was found to be primarily governed by Hall-Petch mechanism. Among the synthesized Mg materials, solid-phase synthesized Mg 1.98 vol % TiO(2) nanocomposite exhibited a maximum tensile fracture strain of ~14.5%. Further, the liquid-phase synthesized Mg-TiO(2) nanocomposites exhibited higher tensile and compression properties than those primarily processed by solid-phase synthesis. The tensile-compression asymmetry values of the synthesized Mg-TiO(2) nanocomposite was found to be lower than that of pure Mg with solid-phase synthesized Mg 1.98 vol % TiO(2) nanocomposite exhibiting as low as 1.06.
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spelling pubmed-53046262017-03-21 Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates Meenashisundaram, Ganesh Kumar Nai, Mui Hoon Gupta, Manoj Nanomaterials (Basel) Article In the present study, Mg (1.98 and 2.5) vol % TiO(2) nanocomposites are primarily synthesized utilizing solid-phase blend-press-sinter powder metallurgy (PM) technique and liquid-phase disintegrated melt deposition technique (DMD) followed by hot extrusion. Microstructural characterization of the synthesized Mg-TiO(2) nanocomposites indicated significant grain refinement with DMD synthesized Mg nanocomposites exhibiting as high as ~47% for 2.5 vol % TiO(2) NPs addition. X-ray diffraction studies indicated that texture randomization of pure Mg depends not only on the critical amount of TiO(2) NPs added to the Mg matrix but also on the adopted synthesis methodology. Irrespective of the processing technique, theoretically predicted tensile yield strength of Mg-TiO(2) nanocomposites was found to be primarily governed by Hall-Petch mechanism. Among the synthesized Mg materials, solid-phase synthesized Mg 1.98 vol % TiO(2) nanocomposite exhibited a maximum tensile fracture strain of ~14.5%. Further, the liquid-phase synthesized Mg-TiO(2) nanocomposites exhibited higher tensile and compression properties than those primarily processed by solid-phase synthesis. The tensile-compression asymmetry values of the synthesized Mg-TiO(2) nanocomposite was found to be lower than that of pure Mg with solid-phase synthesized Mg 1.98 vol % TiO(2) nanocomposite exhibiting as low as 1.06. MDPI 2015-07-31 /pmc/articles/PMC5304626/ /pubmed/28347063 http://dx.doi.org/10.3390/nano5031256 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Meenashisundaram, Ganesh Kumar
Nai, Mui Hoon
Gupta, Manoj
Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates
title Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates
title_full Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates
title_fullStr Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates
title_full_unstemmed Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates
title_short Effects of Primary Processing Techniques and Significance of Hall-Petch Strengthening on the Mechanical Response of Magnesium Matrix Composites Containing TiO(2) Nanoparticulates
title_sort effects of primary processing techniques and significance of hall-petch strengthening on the mechanical response of magnesium matrix composites containing tio(2) nanoparticulates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5304626/
https://www.ncbi.nlm.nih.gov/pubmed/28347063
http://dx.doi.org/10.3390/nano5031256
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